Title :
Admission control in interference-coupled wireless data networks: A queuing theory-based network model
Author :
Klessig, Henrik ; Fehske, Albrecht ; Fettweis, Gerhard
Author_Institution :
Dept. of Mobile Commun. Syst., Dresden Univ. of Technol., Dresden, Germany
Abstract :
Mobile traffic demand varies significantly in time and space. Hence, wireless radio resources in hotspot areas and at peak traffic hours may be scarce. Consequently, special attention has to be paid to effects induced by admission control, i. e., blocking of data requests by base stations in case of high utilization or overload. Moreover, rising traffic demand requires denser deployments and frequency reuse one. Due to the resulting inter-cell interference, the base stations´ utilizations have to be considered mutually dependent, which affects the admission control performance. In this paper, we extend a flow level model for elastic traffic, which explicitly takes into account the dynamic mutual inter-cell interference among base stations, by admission control. The model presented allows computing exact values for the average base station resource utilization, flow throughputs, and blocking probabilities. To analyze large networks containing many cells, we extend two approximation techniques, a state aggregation and an average interference approach, and compare them with the exact solution. Both techniques require far less computational effort and show remarkable accuracy. We believe that the extended flow level model is a positive step towards a more accurate, flexible, and holistic framework for network analysis and planning, and self-organizing network techniques.
Keywords :
approximation theory; frequency allocation; mobile computing; probability; queueing theory; radiofrequency interference; resource allocation; self-organising feature maps; telecommunication congestion control; telecommunication network planning; telecommunication traffic; admission control performance; approximation techniques; average base station resource utilization; average interference approach; blocking probabilities; data request blocking; dynamic mutual intercell interference; flow level model; flow throughputs; frequency reuse; hotspot areas; interference-coupled wireless data networks; mobile traffic demand; network analysis technique; network planning technique; peak traffic hours; queuing theory-based network model; self-organizing network technique; state aggregation approach; wireless radio resources; Admission control; Approximation methods; Base stations; Equations; Interference; Resource management; Throughput; admission control; blocking probability; flow level modeling; interference; queuing theory; wireless network;
Conference_Titel :
Modeling and Optimization in Mobile, Ad Hoc, and Wireless Networks (WiOpt), 2014 12th International Symposium on
Conference_Location :
Hammamet
DOI :
10.1109/WIOPT.2014.6850293